Neural network based dynamic model and gust identification system for the Jetstream G-NFLA

Author:

Antonakis Aristeidis1,Lone Mudassir1,Cooke Alastair1

Affiliation:

1. Dynamics, Simulation and Control Group, Centre for Aeronautics, Cranfield University, UK

Abstract

Artificial neural networks are an established technique for constructing non-linear models of multi-input-multi-output systems based on sets of observations. In terms of aerospace vehicle modelling, however, these are currently restricted to either unmanned applications or simulations, despite the fact that large amounts of flight data are typically recorded and kept for reasons of safety and maintenance. In this paper, a methodology for constructing practical models of aerospace vehicles based on available flight data recordings from the vehicles’ operational use is proposed and applied on the Jetstream G-NFLA aircraft. This includes a data analysis procedure to assess the suitability of the available flight databases and a neural network based approach for modelling. In this context, a database of recorded landings of the Jetstream G-NFLA, normally kept as part of a routine maintenance procedure, is used to form training datasets for two separate applications. A neural network based longitudinal dynamic model and gust identification system are constructed and tested against real flight data. Results indicate that in both cases, the resulting models’ predictions achieve a level of accuracy that allows them to be used as a basis for practical real-world applications.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Aerospace Engineering

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Aircraft turbulence and gust identification using simulated in-flight data;Aerospace Science and Technology;2021-08

2. Deep learning-based inertia tensor identification of the combined spacecraft;Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering;2020-02-07

3. Current gust forecasting techniques, developments and challenges;Advances in Science and Research;2018-07-31

4. Nonlinear aircraft system identification using artificial neural networks enhanced by empirical mode decomposition;Aerospace Science and Technology;2018-04

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